Preparation and Properties of Capric-Lauric-Palmitic Acid Eutectic Mixtures/Expanded Graphite Composite as Phase Change Materials for Energy Storage

Article Preview

Abstract:

This work is focused on the preparation and properties of ternary fatty acid eutectic mixtures/ expanded graphite form-stable phase change materials (PCMs). Based on the theoretical calculation of the mass ratio and ternary eutectic melting temperature, the ternary eutectic mixture of capric acid (CA), lauric acid (LA) and palmitic acid (PA) was prepared firstly, which is for the sake of decreasing the phase transformation temperature. Thermal characteristics such as melting temperature and latent heat of fusion of these developed eutectics measured by using Differential Scanning Calorimetry (DSC) technique, which also showed that the eutectic mixture was composed by CA, LA and PA in the mass ratio of 59.7:30.1:10.02. Then the CA–LA–PA was absorbed in expanded graphite (EG), which acts as a supporting material, the optimum mass ratio of CA–LA–PA to EG is 17:1. The CA–LA–PA/EG composites were characterized by the scanning electronic microscope (SEM), differential scanning calorimeter (DSC). The SEM observations showed that the CA–LA–PA was adsorbed into the porous structure of EG, instead of any chemical action. The DSC results indicated that the phase change temperature and latent heat of the CA–LA–PA and CA–LA–PA/EG were 19.92 °Cand 19.48 °C, and 135.49 J/g and 130.73 J/g respectively. The thermal conductivity of CA–LA–PA /EG composite PCM was improved by the high thermal conductivity of the EG. Thermal cycling test showed that the CA–LA–PA/EG composite had a good thermal reliability. All results indicated that CA–LA–PA/EG composite PCM has a proper melting temperature and latent heat for building energy conservation.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

40-45

Citation:

Online since:

September 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] A. Sari. Thermal reliability test of some fatty acids as PCMs used for solar thermal latent heat storage applications, Energy Conversion and Management, 44(2003)2277-2287.

DOI: 10.1016/s0196-8904(02)00251-0

Google Scholar

[2] A. Sari, K. Kaygusuz. Some fatty acids used for latent heat storage: thermal stability and corrosion of metals with respect to thermal cycling, Renewable Energy, 28(2003)939-948.

DOI: 10.1016/s0960-1481(02)00110-6

Google Scholar

[3] A. Sari. Eutectic mixtures of some fatty acids for low temperature solar heating applications: Thermal properties and thermal reliability, Applied Thermal Engineering, 25(2005)2100-2107.

DOI: 10.1016/j.applthermaleng.2005.01.010

Google Scholar

[4] Y. P. Yuan, N. Zhang, W. Q. Tao, et al. Fatty acids as phase change materials: a review. Renew. Sust, Energy Rev, 29(2014)482-498.

Google Scholar

[5] B. W. Xu, Z. J. Li. Paraffin/diatomite composite phase change material incorporated cement-based composite for thermal energy storage. Appl. Energy, 105(2013) 229-237.

DOI: 10.1016/j.apenergy.2013.01.005

Google Scholar

[6] N. Zhang, Y. p. Yuan, X. Wang, et al. Preparation and characterization of lauric-myristic-palmitic acid ternary eutectic mixtures/expanded graphite composite phase change material for thermal energy storage, Chemical Engineering Journal, 231(2013).

DOI: 10.1016/j.cej.2013.07.008

Google Scholar

[7] Y. b. Cai, C. t. Gao, T. Zhang, et al. Influences of expanded graphite on structural morphology and thermal performance of composite phase change materials consisting of fatty acid eutectics and electrospun PA6 nanofibrous mats, Renewable Energy, 57(2013).

DOI: 10.1016/j.renene.2013.01.044

Google Scholar

[8] X. J. Yang, Y. P. Yuan , N. Zhang, et al. Preparation and properties of myristic-palmitic-stearic acid/expanded graphite composites as phase change materials for energy storage, Solar Energy, 99(2014)259-266.

DOI: 10.1016/j.solener.2013.11.021

Google Scholar

[9] R. Baetens, B. P. Jelle, A. Gustavsen. Phase change materials for building applications: a state of the art review, Energy Build, 42(2010)1361–1368.

DOI: 10.1016/j.enbuild.2010.03.026

Google Scholar

[10] A. Sari. Thermal energy storage properties of mannitol–fatty acid esters as novel organic solid–liquid phase change materials, Energy Convers Manage, 64(2012)68–78.

DOI: 10.1016/j.enconman.2012.07.003

Google Scholar

[11] A. A. Chernov, V. E. Dontsov. The processes of dissolution and hydrate forming behind the shock wave in the gas–liquid medium with gas mixture bubbles, Int J Heat Mass Transfer, 54(2011)4307-16.

DOI: 10.1016/j.ijheatmasstransfer.2011.05.014

Google Scholar

[12] C. M. Jiao, B. H. Ji, D. Fang. Preparation and properties of lauric acid-stearic acid/expanded perlite composite as phase change materials for thermal energy storage, Materials Letters, 67(2012)352-354.

DOI: 10.1016/j.matlet.2011.09.099

Google Scholar

[13] Y. b. Cai, X. Zong, J. j. Zhang, et al. Electrospun nanofibrous mats absorbed with fatty acid eutectics as an innovative typeofform-stable phase change materials for storage and retrieval of thermal energy, Solar Energy Materials & Solar Cells, 109(2013).

DOI: 10.1016/j.solmat.2012.10.022

Google Scholar

[14] Hadi Fauzi, Hendrik S.C. Metselaar, T. M. I. Mahlia, et al. Phase change material: Optimizing the thermal properties and thermal conductivity of myristic acid/palmitic acid eutectic mixture with acid-based surfactants, Applied Thermal Engineering, 60(2013).

DOI: 10.1016/j.applthermaleng.2013.06.050

Google Scholar

[15] X. Meng, H. Z. Zhang, Z. M. Zhao, et al. Preparation, Encapsulation and Thermal Properties of Fatty Acid /Expanded Graphite Composites as Shape-stabilized Phase Change Materials, Chemical of journal of Chinese universities, 33(2012)526-530.

Google Scholar

[16] A. Sarı, A. Karaipekli. Preparation, thermal properties and thermal reliability of palmitic acid/expanded graphite composite as form-stable PCM for thermal energy storage, Sol. Energy Mater. Sol. C 1993(2009)571-576.

DOI: 10.1016/j.solmat.2008.11.057

Google Scholar

[17] Y. P. Zhang, H. P. Hu, X. D. Kong. Phase Change Energy Storage-theory and Application, Beijing: University of Science and Technology of China Press, 1996. Reference to a page in an edited book.

Google Scholar

[18] H. T. He, Q. Y. Yue, B. Y. Gao, et al. The effects of compounding conditions on the properties of fatty acids eutectic mixtures as phase change materials, Energy Conversion and Management, 69(2013)116-121.

DOI: 10.1016/j.enconman.2013.01.026

Google Scholar